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I'm having some trouble, I've finished this part of the program, and it works as planned, it stores the variables and checks all the validations successfully, but I need it to validate so that only digits can be entered. As soon as you press a alpha key, the program crashes.

I know I need to use selection.isdigit somewhere, I have tried it in a few different places, but when I do put it in what seems like the right place, the program crashes because isdigit only works with strings, and given the numeric validations in the program, the program crashes when they try and work with strings. Could someone help me out?

while True:
    if amountwanted > 0:                                                                               
        selection = int(input("What flavour pizza would you like? (1-12): "))                           
        if selection < 1 or selection > 12:                                                             
            print("You must enter a pizza between 1 and 12")                                            
            print("")
        else:
            if selection <= 7:                                                                          
                orderedstandardpizzas.append(selection)
            else:
                orderedgourmetpizzas.append(selection)                                                  
            amountwanted = amountwanted - 1                                                             
    else:                                                                                         
        break  
share|improve this question
    
ah bugger. my code doesn't seem to have formatted properly. –  Daniel Nitschke Sep 14 '12 at 12:45
    
add 4 spaces before any code line –  lolopop Sep 14 '12 at 12:45
    
Formatting help: How do I format my code blocks? –  Martijn Pieters Sep 14 '12 at 12:47
    
Yes I know now, thanks :) –  Daniel Nitschke Sep 14 '12 at 12:48
    
I think input is the wrong function here; use raw_input, as it doesn't eval() the string you enter –  lolopop Sep 14 '12 at 12:49

3 Answers 3

Consider the line

        selection = int(input("What flavour pizza would you like? (1-12): "))                

The input(...) function returns a string based on the user's input; this is then converted to an integer via int(...). [As others have pointed out, input in 3.x is the equivalent of raw_input on 2.x.]

So you have essentially two choices. First, you could treat the non-digit input as an actual error, which you could catch, and use continue to go back to the start of the loop in case of an error:

try:
    selection = int(input("What flavour pizza would you like? (1-12): "))
except ValueError:
    print "Error message"
    continue

This is probably the most appropriate and pythonic strategy.

Conversely, you could check that the input is indeed made of digits, though it's a little more complicated than that, as the current version allows whitespace before and after, so you could do something like

    string_selection = input("What flavour pizza would you like? (1-12): ")
    if not string_selection.strip().isdigit():
        continue
    selection = int(string_selection)

But this is more complicated!

share|improve this answer
    
Isn't raw input for < Python 3.x –  Daniel Nitschke Sep 14 '12 at 13:12
    
Oops, yep. (I usually use 2.x, and almost never input or raw_input anyway!) –  Andrew Jaffe Sep 14 '12 at 14:31

Try this:

selection = raw_input("What flavour pizza would you like? (1-12): ");
if (selection.isdigit())
    numSelection = int(selection);
    if (numSelection < 1 or numSelection > 12:
        // carry on
    else:
        // else case
else:
    //print error message. Break out of loop here if required.
share|improve this answer
    
This is working, but how do I make it give an error message when an incorrect character is entered? it just repeats the question. –  Daniel Nitschke Sep 14 '12 at 13:10
    
Can anyone expand on wills point? It is the best so far. Error Message upon validation? –  Daniel Nitschke Sep 14 '12 at 13:17
    
@Daniel: with an else branch to an error message. –  Matthew Trevor Sep 14 '12 at 13:26
    
@DanielNitschke I've added a bit to my answer. –  Will Sep 14 '12 at 13:33

Your use of int() throws the error, as it will only accept strings that can be interpreted as numbers.

You could catch the exception instead of checking each character in the input:

try:
    selection = int(input("What flavour pizza would you like? (1-12): "))
except ValueError:
    print "You must enter a number!"
    break

The above snippet replaces your old selection = ... line, which has been indented 4 more spaces to match the new try/except block I inserted. The full code ends up like this:

while True:
    if amountwanted > 0:
        try:
            selection = int(input("What flavour pizza would you like? (1-12): "))
        except ValueError:
            print "You must enter a number!"
            break
        if selection < 1 or selection > 12:
            print("You must enter a pizza between 1 and 12")
            print("")
        else:
            if selection <= 7:
                orderedstandardpizzas.append(selection)
            else:
                orderedgourmetpizzas.append(selection)
            amountwanted = amountwanted - 1
     else:
        break
share|improve this answer
    
The program now does not store anything, gives an error message when an alpha is put in, and skips to the next module/step. Have i laid it out wrong? –  Daniel Nitschke Sep 14 '12 at 12:57
    
@DanielNitschke: Probably, yes. :-) I only gave you an example here, to replace your selection = int(input(...)) line. Check you indentation, but most of all, read up on exception handling (try/except) in Python. :-) –  Martijn Pieters Sep 14 '12 at 12:58
    
@DanielNitschke: Still wrong somewhere in your code then. –  Martijn Pieters Sep 14 '12 at 13:08

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